Outdoor integrated energy cabinet
By adopting multiple sets of partition boxes and temperature control components in the outdoor integrated energy cabinet, the problem of poor temperature control is solved, safe separation and rapid cooling of the battery pack are achieved, and the safety of use is improved.
Patent Information
- Application Number
- CN202422107830.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-28
- Publication Date
- 2025-08-12
- Estimated Expiration
- 2034-08-28
AI Technical Summary
The existing outdoor integrated energy cabinet has poor temperature maintenance effect under the heat dissipation method, resulting in poor thermal control control effect of the battery pack.
Designed with a multi-group partition box and temperature control component, including a temperature sensor and a refrigerator, the battery pack is separated by the partition box and the use of the temperature control tube and the cooling tube to achieve rapid cooling and temperature control.
It realizes efficient separation storage and temperature monitoring of the battery pack, avoiding overheating and out of control of the battery pack, and improving overall safety of use.
Smart Images

Figure CN223218394U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of outdoor integrated energy cabinets, in particular to an outdoor integrated energy cabinet. Background Art
[0002] An outdoor cabinet is a cabinet designed to be exposed to the elements, made of metal or non-metallic materials, and designed to prevent unauthorized access. It provides an outdoor physical working environment and safety system for wireless communication sites or wired network workstations. Suitable for installation in outdoor environments such as highways, parks, rooftops, mountainous areas, and flat land, the cabinet provides reliable mechanical and environmental protection for the normal operation of the equipment within.
[0003] Existing outdoor integrated energy cabinets use heat dissipation to circulate internal air, thereby achieving heat dissipation inside the outdoor integrated energy cabinet to prevent thermal runaway. However, this method has a poor effect on maintaining the temperature inside the outdoor integrated energy cabinet, resulting in poor temperature balance inside the outdoor integrated energy cabinet, thereby making the control effect of preventing thermal runaway of the battery pack poor. Utility Model Content
[0004] The purpose of the present utility model is to provide an outdoor integrated energy cabinet to solve the above-mentioned problems.
[0005] To achieve the above objectives, the present invention provides the following technical solutions:
[0006] An outdoor integrated energy cabinet comprises an energy cabinet body, a plurality of receiving components are arranged inside the energy cabinet body, and a temperature control component is arranged on the rear side of the interior of the energy cabinet body;
[0007] The receiving assembly includes a partition box installed inside the energy cabinet body, the interior of the partition box is provided with load-bearing guide rails on the left and right sides, the interior of the load-bearing guide rails is slidably installed with transfer guide rails, the interior of the transfer guide rails is slidably installed with a receiving plate, the inner side of the receiving plate is installed with a supporting plate, and the middle of the supporting plate is installed with a temperature sensor;
[0008] The temperature control component includes a loading plate installed on the lower rear side of the energy cabinet body, and a refrigerator is installed on the upper side of the loading plate. The temperature control component also includes a reinforcement frame installed on the rear side of the energy cabinet body. The liquid inlet end of the refrigerator is provided with a first transfer tube, and the liquid outlet end of the refrigerator is provided with a second transfer tube. A temperature control tube is installed on the front side of the reinforcement frame, and a cooling tube is provided on the temperature control tube.
[0009] As a preferred solution of the present invention, the partition boxes are located inside the energy cabinet body and are vertically arranged in multiple groups. Both sides of the partition boxes are connected to the energy cabinet body by supporting columns.
[0010] As a preferred solution of the present invention, the rear cover plate and the front door plate of the energy cabinet body can be arranged as needed, and the side cross-section of the lowermost partition box is arranged in an "L"-shaped structure.
[0011] As a preferred solution of the present invention, the load-bearing guide rails are fixedly connected to the partition box by using fixing bolts, and the load-bearing guide rails are arranged on the lower sides of the left and right side surfaces inside the partition box.
[0012] As a preferred solution of the present invention, a limit plate is provided correspondingly between the inner front end of the load-bearing guide rail and the rear end of the transfer guide rail, and a limit plate is provided correspondingly between the inner front end of the transfer guide rail and the rear end of the supporting plate.
[0013] As a preferred solution of the present invention, a plurality of strip grooves are evenly arranged on the supporting plate, and the temperature sensor is detachably arranged between the supporting plate.
[0014] As a preferred solution of the present invention, the ends of the first transfer tube and the second transfer tube away from the refrigerator are respectively connected to the two ends of the temperature control tube.
[0015] As a preferred solution of the present invention, the reinforcement frame is arranged in a grid plate structure, and the temperature control tube is vertically laid on the reinforcement frame in a reciprocating "U"-shaped structure.
[0016] As a preferred solution of the present invention, the cooling pipe and the temperature control pipe are integrally formed, the cooling pipe is arranged in a reciprocating "U"-shaped structure, and the cooling pipe is arranged between every two groups of the partition boxes.
[0017] Compared with the prior art, the beneficial effects of the present invention are:
[0018] 1. In the present invention, multiple partition boxes are provided in the receiving assembly to realize the separation and placement of the battery packs, thereby achieving a good receiving effect of the battery packs. The temperature sensor can be used to monitor the temperature of each group of battery packs, thereby achieving a good temperature control monitoring effect inside the energy cabinet body, and making the energy cabinet body highly safe when receiving the battery packs.
[0019] 2. In the present invention, the temperature control component can be used to quickly cool down the interior of the energy cabinet body, and can also control the temperature of the battery pack storage environment inside each group of partition boxes, which can effectively prevent the battery pack from overheating and runaway, making the overall use safer. The cooling tube and the temperature control tube are integrally formed and both adopt a reciprocating "U"-shaped structure, which can make their laying area in the energy cabinet body larger, thereby making the temperature control effect inside the energy cabinet body better and making the battery pack have a good thermal runaway prevention effect when in use. BRIEF DESCRIPTION OF THE DRAWINGS
[0020] Figure 1 This is a schematic diagram of the main structure of the utility model;
[0021] Figure 2 This is a rear view structural diagram of the utility model;
[0022] Figure 3 It is a partial structural diagram of the utility model;
[0023] Figure 4 It is a partial structural diagram of the receiving component of the present utility model.
[0024] In the figure: 1. Energy cabinet body; 2. Supporting assembly; 201. Partition box; 202. Load-bearing guide rail; 203. Transfer rail; 204. Supporting plate; 205. Support plate; 206. Temperature sensor; 3. Temperature control assembly; 301. Loading plate; 302. Refrigeration machine; 303. Reinforcement frame; 304. First transfer pipe; 305. Second transfer pipe; 306. Temperature control pipe; 307. Cooling pipe. DETAILED DESCRIPTION
[0025] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative work are within the scope of protection of the present invention.
[0026] Example: See Figure 1-4 An outdoor integrated energy cabinet shown includes an energy cabinet body 1, a plurality of receiving components 2 are arranged inside the energy cabinet body 1, and a temperature control component 3 is arranged on the rear side of the interior of the energy cabinet body 1;
[0027] In this embodiment, reference Figure 1 and 4 As shown, the receiving assembly 2 includes a partition box 201 installed inside the energy cabinet body 1, and the interior of the partition box 201 is provided with load-bearing guide rails 202 on the left and right sides, and the interior of the load-bearing guide rail 202 is slidably installed with a transfer guide rail 203, and the interior of the transfer guide rail 203 is slidably installed with a receiving plate 204, and the inner side of the receiving plate 204 is installed with a supporting plate 205, and the middle of the supporting plate 205 is installed with a temperature sensor 206; by arranging multiple partition boxes 201 in the receiving assembly 2, the battery packs can be separated and placed, so that the battery packs have a good receiving effect, and the temperature sensor 206 can be used to perform temperature sensing and monitoring of each group of battery packs, so that the internal temperature control monitoring effect of the energy cabinet body 1 is good, so that the energy cabinet body 1 has high safety when receiving the battery packs.
[0028] Multiple vertically arranged groups of compartments 201 are located within the energy cabinet body 1. The compartments 201 are connected to the energy cabinet body 1 using supporting columns on both sides. The rear cover and front door panels of the energy cabinet body 1 can be adjusted as needed. The lowermost compartment 201 has an L-shaped cross-section when viewed from the side. This arrangement effectively separates and stores the battery packs, while also ensuring optimal temperature control during overall storage and use.
[0029] The load-bearing guide rail 202 is fixedly connected to the partition box 201 by fixing bolts, and the load-bearing guide rail 202 is arranged on the lower side of the left and right sides of the partition box 201. A limit plate is provided corresponding to the inner front end of the load-bearing guide rail 202 and the rear end of the transfer guide rail 203, and a limit plate is provided corresponding to the inner front end of the transfer guide rail 203 and the rear end of the supporting plate 204. A plurality of groups of strip grooves are evenly arranged on the supporting plate 205, and the temperature sensor 206 is detachably arranged between the supporting plate 205. Its function is that, through the structural setting between the load-bearing guide rail 202, the transfer guide rail 203, and the supporting plate 204, the pulling, regulating and limiting effects of the supporting plate 205 can be improved, so that the installation of each battery pack group is convenient.
[0030] In this embodiment, reference Figure 2 and 3 As shown, the temperature control assembly 3 includes a loading plate 301 mounted on the lower rear side of the energy cabinet body 1. A refrigerator 302 is mounted on the upper side of the loading plate 301. The temperature control assembly 3 also includes a reinforcement frame 303 mounted on the inner rear side of the energy cabinet body 1. The liquid inlet end of the refrigerator 302 is provided with a first transfer pipe 304, and the liquid outlet end of the refrigerator 302 is provided with a second transfer pipe 305. The front side of the reinforcement frame 303 is installed with a temperature control tube 306, and the temperature control tube 306 is provided with a cooling tube 307. The temperature control assembly 3 can achieve rapid cooling of the interior of the energy cabinet body 1, and can also control the temperature of the battery pack storage environment within each group of compartments 201, effectively preventing the battery pack from overheating and runaway, and improving overall safety.
[0031] The ends of the first transfer tube 304 and the second transfer tube 305 away from the refrigerator 302 are respectively connected to the two ends of the temperature control tube 306. The reinforcement frame 303 adopts a grid plate structure, and the temperature control tube 306 is vertically laid on the reinforcement frame 303 in a reciprocating "U"-shaped structure. The cooling tube 307 and the temperature control tube 306 are integrally formed and arranged. The cooling tube 307 is arranged in a reciprocating "U"-shaped structure. The cooling tube 307 is arranged between each two groups of partition boxes 201. By integrally forming the cooling tube 307 and the temperature control tube 306 and both adopting a reciprocating "U"-shaped structure, the laying area of the cooling tube 307 in the energy cabinet body 1 can be larger, thereby achieving better temperature control effect inside the energy cabinet body 1 and better thermal runaway protection effect when the battery pack is in use.
[0032] When the outdoor integrated energy cabinet for batteries that prevents thermal runaway in this solution is in use, the movement and control of the supporting plate 205 is achieved by pulling and moving the supporting plate 204 and the transfer guide rail 203. After the supporting plate 205 is moved out of the partition box 201, the battery pack is loaded. After completion, the supporting plate 205 is pushed to reset the supporting plate 204 and the transfer guide rail 203 to achieve the loading of the battery pack by the partition box 201. By providing multiple partition boxes 201 in the loading assembly 2, the battery packs can be separated and placed, so that the loading effect of the battery packs is good. The temperature sensor 206 can be used to monitor the temperature of each group of battery packs, so that the temperature control monitoring effect inside the energy cabinet body 1 is good, and the energy cabinet body 1 is highly safe when loading the battery packs.
[0033] When the temperature sensor 206 detects that the temperature inside each group of partition boxes 201 reaches a critical value, the refrigerator 302 increases its operation, and quickly cools down the inside of the energy cabinet body 1 through the temperature control tube 306. At the same time, the cooling tube 307 cools down each group of partition boxes 201, so that the battery packs contained in the partition boxes 201 maintain a good storage temperature. The temperature control component 3 can achieve rapid cooling of the inside of the energy cabinet body 1, and can also control the temperature of the battery pack storage environment inside each group of partition boxes 201, which can effectively prevent the battery pack from overheating and runaway, making the overall use safe.
[0034] Although the embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and variations may be made to these embodiments without departing from the principles and spirit of the present invention, and the scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. An outdoor integrated energy cabinet, comprising an energy cabinet body (1), characterized in that: A plurality of receiving components (2) are provided inside the energy cabinet body (1), and a temperature control component (3) is provided on the rear side of the interior of the energy cabinet body (1); The receiving assembly (2) comprises a partition box (201) installed inside the energy cabinet body (1), the interior of the partition box (201) is provided with load-bearing guide rails (202) correspondingly on the left and right sides, the interior of the load-bearing guide rail (202) is slidably installed with a transfer guide rail (203), the interior of the transfer guide rail (203) is slidably installed with a receiving plate (204), the inner side of the receiving plate (204) is provided with a supporting plate (205), and the middle of the supporting plate (205) is provided with a temperature sensor (206); The temperature control assembly (3) comprises a loading plate (301) mounted on the lower rear side of the energy cabinet body (1), a refrigerator (302) being mounted on the upper side of the loading plate (301), and the temperature control assembly (3) further comprises a reinforcement frame (303) mounted on the rear side of the energy cabinet body (1), a first transfer pipe (304) being provided at the liquid inlet end of the refrigerator (302), a second transfer pipe (305) being provided at the liquid outlet end of the refrigerator (302), a temperature control pipe (306) being mounted on the front side of the reinforcement frame (303), and a cooling pipe (307) being provided on the temperature control pipe (306).
2. The outdoor integrated energy cabinet according to claim 1, characterized in that: The partition boxes (201) are located inside the energy cabinet body (1) and are vertically arranged in multiple groups. Both sides of the partition boxes (201) are connected to the energy cabinet body (1) using supporting columns.
3. The outdoor integrated energy cabinet according to claim 1, characterized in that: The rear cover plate and the front door plate of the energy cabinet body (1) can be arranged as required, and the side cross section of the partition box (201) at the bottom is arranged in an "L"-shaped structure.
4. The outdoor integrated energy cabinet according to claim 1, characterized in that: The load-bearing guide rail (202) is fixedly connected to the partition box (201) by means of fixing bolts. The load-bearing guide rail (202) is arranged on the lower sides of the left and right side surfaces inside the partition box (201).
5. The outdoor integrated energy cabinet according to claim 1, characterized in that: The inner front end of the load-bearing guide rail (202) and the rear end of the transfer guide rail (203) are correspondingly provided with a limit plate, and the inner front end of the transfer guide rail (203) and the rear end of the mounting plate (204) are correspondingly provided with a limit plate.
6. The outdoor integrated energy cabinet according to claim 1, characterized in that: The supporting plate (205) is evenly provided with a plurality of strip-shaped grooves, and the temperature sensor (206) is detachably arranged between the supporting plate (205).
7. The outdoor integrated energy cabinet according to claim 1, characterized in that: The ends of the first transfer tube (304) and the second transfer tube (305) away from the refrigerator (302) are respectively connected to the two ends of the temperature control tube (306).
8. The outdoor integrated energy cabinet according to claim 1, characterized in that: The reinforcement frame (303) is provided with a grid plate structure, and the temperature control pipe (306) is vertically laid on the reinforcement frame (303) in a reciprocating "U"-shaped structure.
9. The outdoor integrated energy cabinet according to claim 1, characterized in that: The cooling tube (307) and the temperature control tube (306) are integrally formed, and the cooling tube (307) is arranged in a reciprocating "U"-shaped structure. The cooling tube (307) is located between each two groups of the partition boxes (201).